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典型的四联体介导信号传导和植株形态变化调控籼稻基因型的耐盐胁迫能力。

Typical tetra-mediated signaling and plant architectural changes regulate salt-stress tolerance in indica rice genotypes.

作者信息

Shivani Shivani, Ghosh Rohit, Mitra Adinpunya, Das Arpita, Banerjee Joydeep

机构信息

Agricultural and Food Engineering Department, Indian Institute of Technology Kharagpur, Kharagpur, India, 721302.

Department of Genetics and Plant Breeding, Bidhan Chandra Krishi Viswavidyalaya, Mohanpur, Haringhata, India.

出版信息

Protoplasma. 2025 Jan 27. doi: 10.1007/s00709-025-02035-3.

Abstract

Upon exposure to salt stress, calcium signaling in plants activates various stress-responsive genes and proteins along with enhancement in antioxidant defense to eventually regulate the cellular homeostasis for reducing cytosolic sodium levels. The coordination among the calcium signaling molecules and transporters plays a crucial role in salinity tolerance. In the present study, twenty-one diverse indigenous rice genotypes were evaluated for salt tolerance during the early seedling stage, and out of that nine genotypes were further selected for physio-biochemical study. Further analysis identified potential salt-tolerant and salt-sensitive genotypes with tolerant lines exhibiting lower Na/K ratio. Plant phenotype clearly documented the root architectural changes among the most salt-tolerant and sensitive genotypes, while the histo-biochemical DAB and NBT staining and in-gel SOD activity clearly revealed the differential ROS accumulation between the contrasting genotypes and their antioxidant activity. Ultrastructural study depicted stronger UV autofluorescence in the hypodermal and vascular bundle regions, while phloroglucinol staining displayed intense coloration in the vascular bundle region of Bhutmuri, the salt-tolerant genotype, compared to Manipuri Black, the salt-sensitive one showing differential lignification among the contrasting genotype to combat salt stress. Based on expression study, our proposed model depicted immediate upregulation (short-term) of OsSOS3 and OsNHX1 along with gradual upregulation of OsHKT and downregulation of OsSOS1 throughout the stress period to protect the tolerant plant through signaling cascade, while the inadequate upregulation of OsSOS3, OsNHX1, and OsHKT under early stress, coupled with poor coordination between the expression of OsSOS1 and OsSOS3 genes, makes the plant salt sensitive.

摘要

在遭受盐胁迫时,植物中的钙信号会激活各种应激反应基因和蛋白质,同时增强抗氧化防御能力,最终调节细胞内稳态以降低胞质钠水平。钙信号分子和转运体之间的协同作用在耐盐性中起着关键作用。在本研究中,对21种不同的本地水稻基因型在幼苗早期进行了耐盐性评估,其中9种基因型被进一步选作生理生化研究。进一步分析确定了潜在的耐盐和盐敏感基因型,耐盐品系的钠/钾比值较低。植物表型清楚地记录了最耐盐和最敏感基因型之间的根系结构变化,而组织生化DAB和NBT染色以及凝胶内SOD活性清楚地揭示了对比基因型之间不同的活性氧积累及其抗氧化活性。超微结构研究表明,在皮下和维管束区域有较强的紫外线自发荧光,而与盐敏感的曼尼普尔黑相比,耐盐基因型布图穆里的维管束区域在间苯三酚染色中显示出强烈的颜色,表明在对比基因型之间存在不同的木质化以对抗盐胁迫。基于表达研究,我们提出的模型表明,在整个胁迫期间,OsSOS3和OsNHX1立即上调(短期),同时OsHKT逐渐上调,OsSOS1下调,以通过信号级联保护耐盐植物,而在早期胁迫下OsSOS3、OsNHX1和OsHKT上调不足,再加上OsSOS1和OsSOS3基因表达之间的协调性差,使得植物对盐敏感。

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